A brief History of Time: From Big Bang to Black Holes


partners of the photon, with the correct predicted masses and other


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partners of the photon, with the correct predicted masses and other
properties. Carlo Rubbia, who led the team of several hundred physicists
that made the discovery, received the Nobel prize in 1984, along with
Simon van der Meer, the CERN engineer who developed the antimatter
storage system employed. (It is very difficult to make a mark in
experimental physics these days unless you are already at the top!)
The fourth category is the strong nuclear force, which holds the quarks
together in the proton and neutron, and holds the protons and neutrons
together in the nucleus of an atom. It is believed that this force is carried by
another spin-1 particle, called the gluon, which interacts only with itself and
with the quarks. The strong nuclear force has a curious property called
confinement: it always binds particles together into combinations that have
no color. One cannot have a single quark on its own because it would have
a color (red, green, or blue). Instead, a red quark has to be joined to a green
and a blue quark by a ‘string’ of gluons (red + green + blue = white). Such a
triplet constitutes a proton or a neutron. Another possibility is a pair
consisting of a quark and an antiquark (red + antired, or green + antigreen,
or blue + antiblue = white). Such combinations make up the particles
known as mesons, which are unstable because the quark and antiquark can
annihilate each other, producing electrons and other particles. Similarly,
confinement prevents one having a single gluon on its own, because gluons
also have color. Instead, one has to have a collection of gluons whose colors


add up to white. Such a collection forms an unstable particle called a
glueball.
The fact that confinement prevents one from observing an isolated quark
or gluon might seem to make the whole notion of quarks and gluons as
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